Indium selenide for mode-locked pulse generation in a Mid-infrared Er:ZBLAN fiber laser

IF 3.1 3区 物理与天体物理 Q2 Engineering Optik Pub Date : 2024-06-22 DOI:10.1016/j.ijleo.2024.171928
Linyan Wang , Yushuo Bao , Xinhao Zhou , Huanhuan Li , Can Li , Junjie Zhang , Shiqing Xu
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Abstract

Two-dimensional materials are increasingly recognized for their distinctive nonlinear optical properties. Indium selenide (InSe), a notable optoelectronic material, demonstrates unique advantages in terms of nonlinear absorption behavior, making it a promising candidate in mid-infrared mode-locked lasers. By preparing a InSe saturable absorber (SA) and applying it in a Er: ZBLAN fiber laser, we demonstrate a stable mode-locked mid-infrared fiber laser at 2.8 μm. The obtained mode-locked pulses have a repetition frequency and pulse duration of 29.875 MHz and 13.6 ps, respectively. The obtained maximum value of pulse energy is 4.3 nJ. The signal-to-noise ratio (SNR) is 55 dB, indicating the high stability of the laser system. Our experimental results validate that InSe is a promising SA in the near 3 μm band. This work paves the way for further investigations and applications of InSe-based devices in nonlinear optics and mode-locked laser systems.

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硒化铟用于中红外 Er:ZBLAN 光纤激光器中的锁模脉冲生成
二维材料因其独特的非线性光学特性而日益得到认可。硒化铟(InSe)是一种著名的光电材料,在非线性吸收行为方面具有独特的优势,使其成为中红外锁模激光器的理想候选材料。通过制备 InSe 可饱和吸收体(SA)并将其应用于 Er: ZBLAN 光纤激光器,我们展示了一种稳定的 2.8 μm 中红外光纤激光器。所获得的锁模脉冲的重复频率和脉冲持续时间分别为 29.875 MHz 和 13.6 ps。脉冲能量的最大值为 4.3 nJ。信噪比(SNR)为 55 dB,表明激光系统具有很高的稳定性。我们的实验结果验证了铟硒在近 3 μm 波段是一种很有前途的 SA。这项工作为基于 InSe 的器件在非线性光学和锁模激光系统中的进一步研究和应用铺平了道路。
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来源期刊
Optik
Optik 物理-光学
CiteScore
6.90
自引率
12.90%
发文量
1471
审稿时长
46 days
期刊介绍: Optik publishes articles on all subjects related to light and electron optics and offers a survey on the state of research and technical development within the following fields: Optics: -Optics design, geometrical and beam optics, wave optics- Optical and micro-optical components, diffractive optics, devices and systems- Photoelectric and optoelectronic devices- Optical properties of materials, nonlinear optics, wave propagation and transmission in homogeneous and inhomogeneous materials- Information optics, image formation and processing, holographic techniques, microscopes and spectrometer techniques, and image analysis- Optical testing and measuring techniques- Optical communication and computing- Physiological optics- As well as other related topics.
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